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Home NEWS Science News Technology

Flexible polymer liquid crystal sensor records electrophysiological activity without labels

Bioengineer by Bioengineer
July 31, 2026
in Technology
Reading Time: 4 mins read
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Flexible polymer liquid crystal sensor records electrophysiological activity without labels
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A new class of soft, flexible sensor could change how scientists record the electrical activity of living cells and tissues. In a study published in npj Flexible Electronics, R.M. Almasri, Y. Chen, F. Ladouceur and colleagues report a polymer-based liquid crystal device designed to detect electrophysiological signals without relying on fluorescent labels or other chemical markers. The approach combines the optical sensitivity of liquid crystals with the mechanical adaptability of flexible polymers, creating a platform that may help make biological measurements more direct, lightweight and compatible with delicate living systems.

Electrophysiological activity refers to the electrical signals produced when cells communicate or respond to their surroundings. Neurons generate voltage pulses as they transmit information, while cardiac and muscle cells produce coordinated electrical patterns that control contraction. These signals are commonly measured using electrodes, fluorescent dyes or genetically encoded indicators. Although powerful, many existing techniques can require invasive contact, specialized imaging systems or labels that may alter the cells being studied. A label-free optical sensor could provide an alternative by translating electrical changes into visible or electronically detectable changes in light.

The device described by the researchers is based on liquid crystals, materials whose molecules can flow like a liquid while maintaining an organized orientation. This order makes liquid crystals highly responsive to external forces and changes at their interfaces. In familiar displays, electrical fields reorient liquid-crystal molecules and alter the passage of polarized light, producing the pixels seen on screens. In a biosensing system, the same basic principle can be adapted so that electrical activity near the sensor changes the molecular alignment of the liquid crystal, resulting in an optical signal that can be recorded without attaching a fluorescent tag to the biological target.

The polymer component is equally important. Traditional optical and electronic sensors are often fabricated on rigid glass or silicon substrates, which can be difficult to place against curved, moving or fragile biological surfaces. A polymer-based structure can bend, conform to irregular shapes and potentially tolerate repeated motion more effectively. That flexibility is especially relevant for recording activity from tissues such as the heart, brain or muscles, where mechanical movement and soft interfaces can complicate measurements. By integrating liquid-crystal sensing with a flexible substrate, the platform is aimed at bringing the sensor closer to the physical and mechanical conditions of biological tissue.

The central promise of the technology is its label-free operation. Instead of adding a fluorescent molecule that binds to a target or changes brightness in response to voltage, the sensor is designed to respond through an electro-optical mechanism. Electrical signals generated by electrophysiological activity can influence the local environment of the liquid crystal, modifying its orientation and therefore its interaction with polarized light. A camera, photodetector or other optical readout can then monitor those changes. This type of signal conversion could make it possible to observe electrical behavior while reducing the need for chemical preparation or genetic modification.

Such an approach may be particularly valuable when researchers need to observe cells over extended periods. Fluorescent indicators can fade, produce background signals or require procedures that are not suitable for every biological model. Electrodes, meanwhile, can be difficult to miniaturize across large areas or may record only from limited contact points. A flexible optical surface could, in principle, provide a broader sensing interface while remaining less mechanically disruptive. The work therefore sits at the intersection of soft electronics, photonics and bioengineering, fields increasingly focused on building devices that can interact with living matter without behaving like rigid machines.

The technology could also contribute to the development of wearable and implantable systems. Flexible sensors are being explored for monitoring heart rhythms, muscle activation and neural activity, as well as for creating interfaces between biological tissue and electronic devices. A liquid-crystal sensor may offer a visually accessible route to these measurements because its response can be captured through changes in light rather than through a complex network of hardwired electrical connections. For researchers, that could simplify some experimental setups; for future medical devices, it could support thin, conformable systems designed to follow the motion of the body.

However, translating an intriguing sensing principle into a reliable biological tool involves significant technical challenges. The electrical signals produced by cells can be extremely small, and the sensor must distinguish them from motion, temperature fluctuations, ambient light and other sources of interference. The liquid-crystal layer must also remain stable, responsive and compatible with the surrounding materials. For practical use, researchers will need to establish how quickly the device responds, how accurately its optical changes track biological voltage events, how long it can operate, and whether it can function in complex, fluid-rich environments. These questions will determine whether the platform can move beyond laboratory demonstrations.

The study represents a broader shift toward flexible, label-free technologies that treat biological systems as dynamic electrical environments rather than passive samples. By using the alignment of liquid-crystal molecules as an optical reporter, the researchers offer a route for monitoring electrophysiological activity through a material response that can be read with light. If further development confirms robust sensitivity and long-term biocompatibility, polymer-based liquid-crystal sensors could become useful tools for studying cell networks, screening therapies and designing next-generation biointerfaces. The work highlights how a material best known for transforming electrical signals into images may also help scientists visualize the hidden electrical language of living systems.

Subject of Research: Flexible polymer-based liquid crystal sensing for label-free electro-optical recording of electrophysiological activity

Article Title: Flexible polymer-based liquid crystal sensor for label-free electro-optical recording of electrophysiological activity

Article References: Almasri, R.M., Chen, Y., Ladouceur, F. et al. “Flexible polymer-based liquid crystal sensor for label-free electro-optical recording of electrophysiological activity.” npj Flexible Electronics (2026). https://doi.org/10.1038/s41528-026-00625-6

Image Credits: AI Generated

DOI: 10.1038/s41528-026-00625-6

Keywords: flexible electronics, liquid crystal sensor, electrophysiology, label-free biosensing, electro-optical recording, polymer-based sensor, biointerfaces, neural activity, cardiac signals, wearable sensors

Tags: advanced polymer sensors for electrophysiological recordingflexible electronics for electrophysiologyflexible polymer liquid crystal sensorlabel-free electrophysiological signal detectionlabel-free optical biosensorslightweight biocompatible sensors for cell and tissue analysisliquid crystal sensors for bioelectrical signalsnon-invasive neural and cardiac activity monitoringoptical detection of electrical signals in biological systemsoptical sensing of electrical activity in living tissuespolymer-based liquid crystal devices for biological measurementssoft wearable biosensors for cellular activity

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